Faraday cage-type self-powered immunosensor based on hybrid enzymatic biofuel cell

Li M, Jiang F, Xue L, et al. Recent progress in biosensors for detection of tumor biomarkers. Molecules. 2022;27(21):7327.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Song G, Han H, Ma Z. Anti-fouling strategies of electrochemical sensors for tumor markers. Sensors. 2023;23(11):5202.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Tang Z, Ma Z. Multiple functional strategies for amplifying sensitivity of amperometric immunoassay for tumor markers: a review. Biosens Bioelectron. 2017;98:100–12.

Article  CAS  PubMed  Google Scholar 

Dhawan S, Sadanandan S, Haridas V, Voelcker NH, Prieto-Simón B. Novel peptidylated surfaces for interference-free electrochemical detection of cardiac troponin I. Biosens Bioelectron. 2018;99:486–92.

Article  CAS  PubMed  Google Scholar 

Zheng Y, Ma Z. Multifunctionalized ZIFs nanoprobe-initiated tandem reaction for signal amplified electrochemical immunoassay of carbohydrate antigen 24–2. Biosens Bioelectron. 2019;129:42–9.

Article  CAS  PubMed  Google Scholar 

Zang D, Ge L, Yan M, Song X, Yu J. Electrochemical immunoassay on a 3D microfluidic paper-based device. Chem Commun. 2012;48(39):4683–5.

Article  CAS  Google Scholar 

Wang Z, Guo Y, Xianyu Y. Applications of self-assembly strategies in immunoassays: a review. Coord Chem Rev. 2023;478: 214974.

Article  CAS  Google Scholar 

Chen M, Meng H, Mo F, Guo J, Fu Y. An electron donor-acceptor organic photoactive composite with Schottky heterojunction induced photoelectrochemical immunoassay. Biosens Bioelectron. 2021;191: 113475.

Article  CAS  PubMed  Google Scholar 

Hou M, Ma L, Yang H, Si F, Liu Y. Background-free and signal-amplified upconversion fluorescent biosensing platform for sensitive detection of CYFRA21-1. Talanta. 2023;262: 124659.

Article  CAS  PubMed  Google Scholar 

Song Z, Li R, Yang X, Ambrosi A, Luo X. Ultralow fouling electrochemical detection of uric acid directly in serum based on phase-transited bovine serum albumin and conducting polymer. Chin Chem Lett. 2023;34:108314.

Feng J, Liang X, Ma Z. New immunoprobe: dual-labeling ZIF-8 embellished with multifunctional bovine serum albumin lamella for electrochemical immunoassay of tumor marker. Biosens Bioelectron. 2021;175: 112853.

Article  CAS  PubMed  Google Scholar 

Zhao L, Han H, Ma Z. Improved screen-printed carbon electrode for multiplexed label-free amperometric immuniosensor: addressing its conductivity and reproducibility challenges. Biosens Bioelectron. 2018;101:304–10.

Article  CAS  PubMed  Google Scholar 

Li W, Yu X, Huang H. Nanocluster-assisted protein-film voltammetry for direct electrochemical signal acquisition. Anal Bioanal Chem. 2021;413(6):1665–73.

Article  CAS  PubMed  Google Scholar 

Tam TK, Strack G, Pita M, Katz E. Biofuel cell logically controlled by antigen−antibody recognition: towards immune-regulated bioelectronic devices. J Am Chem Soc. 2009;131(33):11670–1.

Article  CAS  PubMed  Google Scholar 

Gu C, Gai P, Hou T, Li H, Xue C, Li F. Enzymatic fuel cell-based self-powered homogeneous immunosensing platform via target-induced glucose release: an appealing alternative strategy for turn-on melamine assay. ACS Appl Mater Interfaces. 2017;9(41):35721–8.

Article  CAS  PubMed  Google Scholar 

Wang Y, Ge L, Wang P, Yan M, Yu J, Ge S. A three-dimensional origami-based immuno-biofuel cell for self-powered, low-cost, and sensitive point-of-care testing. Chem Commun. 2014;50(16):1947–9.

Article  CAS  Google Scholar 

Conzuelo F, Vivekananthan J, Pöller S, Pingarrón JM, Schuhmann W. Immunologically controlled biofuel cell as a self-powered biosensor for antibiotic residue determination. ChemElectroChem. 2014;1(11):1854–8.

Article  CAS  Google Scholar 

Cheng J, Han Y, Deng L, Guo S. Carbon nanotube–bilirubin oxidase bioconjugate as a new biofuel cell label for self-powered immunosensor. Anal Chem. 2014;86(23):11782–8.

Article  CAS  PubMed  Google Scholar 

Bollella P, Boeva Z, Latonen RM, Kano K, Gorton L, Bobacka J. Highly sensitive and stable fructose self-powered biosensor based on a self-charging biosupercapacitor. Biosens Bioelectron. 2021;176: 112909.

Article  CAS  PubMed  Google Scholar 

Li S, Wang Y, Ge S, Yu J, Yan M. Self-powered competitive immunosensor driven by biofuel cell based on hollow-channel paper analytical devices. Biosens Bioelectron. 2015;71:18–24.

Article  CAS  PubMed  Google Scholar 

Bard AJ, Faulkner LR. Electrochemical methods: fundamentals and applications. 2nd ed. Wiley; 2000.

Guo Z, Sha Y, Hu Y, Wang S. In-electrode vs. on-electrode: ultrasensitive Faraday cage-type electrochemiluminescence immunoassay. Chem Commun. 2016;52(25):4621–4.

Article  CAS  Google Scholar 

Tan RKL, Reeves SP, Hashemi N, et al. Graphene as a flexible electrode: review of fabrication approaches. J Mater Chem A. 2017;5(34):17777–803.

Article  CAS  Google Scholar 

Rowley-Neale SJ, Randviir EP, Abo Dena AS, Banks CE. An overview of recent applications of reduced graphene oxide as a basis of electroanalytical sensing platforms. Appl Mater Today. 2018;10:218–26.

Article  Google Scholar 

Dagys M, Laurynėnas A, Ratautas D, et al. Oxygen electroreduction catalysed by laccase wired to gold nanoparticles via the trinuclear copper cluster. Energy Environ Sci. 2017;10(2):498–502.

Article  CAS  Google Scholar 

Kang C, Shin H, Zhang Y, Heller A. Deactivation of bilirubin oxidase by a product of the reaction of urate and O2. Bioelectrochemistry. 2004;65(1):83–8.

Article  CAS  PubMed  Google Scholar 

dos Santos L, Climent V, Blanford CF, Armstrong FA. Mechanistic studies of the ‘blue’ Cu enzyme, bilirubin oxidase, as a highly efficient electrocatalyst for the oxygen reduction reaction. Phys Chem Chem Phys. 2010;12(42):13962–74.

Article  PubMed  Google Scholar 

Parimi NS, Umasankar Y, Atanassov P, Ramasamy RP. Kinetic and mechanistic parameters of laccase catalyzed direct electrochemical oxygen reduction reaction. ACS Catal. 2012;2(1):38–44.

Article  CAS  Google Scholar 

Wang X, Zhang H, Lin H, et al. Directly converting Fe-doped metal–organic frameworks into highly active and stable Fe-N-C catalysts for oxygen reduction in acid. Nano Energy. 2016;25:110–9.

Article  CAS  Google Scholar 

Xia D, Tang X, Dai S, et al. Ultrastable Fe–N–C fuel cell electrocatalysts by eliminating non-coordinating nitrogen and regulating coordination structures at high temperatures. Adv Mater. 2023;35(5):2204474.

Article  CAS  Google Scholar 

Wang Q, Lu R, Yang Y, et al. Tailoring the microenvironment in Fe–N–C electrocatalysts for optimal oxygen reduction reaction performance. Sci Bull. 2022;67(12):1264–73.

Article  CAS  Google Scholar 

Hummers WS Jr, Offeman RE. Preparation of graphitic oxide. J Am Chem Soc. 1958;80(6):1339–1339.

Article  CAS  Google Scholar 

Ma W, Saccardo A, Roccatano D, et al. Modular assembly of proteins on nanoparticles. Nat Commun. 2018;9(1):1489.

Article  PubMed  PubMed Central  Google Scholar 

Guo Z, Zhu J, Yin J, Miao P. Zeolitic imidazolate framework-8 encapsulating carbon nanodots and silver nanoparticles for fluorescent detection of H2O2 and glucose. J Colloid Interface Sci. 2023;643:385–92.

Article  CAS  PubMed  Google Scholar 

Huang T, Wei J, Zhu X, Zhang E. Soybean powder enables the synthesis of Fe–N–C catalysts with high ORR activities in microbial fuel cell applications. Int J Hydrog Energy. 2021;46(59):30334–43.

Article  CAS  Google Scholar 

Mahmood A, Zhao B, Xie N, Niu L. Ionic liquids as precursors for Fe–N doped carbon nanotube electrocatalysts for the oxygen reduction reaction. Nanoscale. 2021;13(37):15804–11.

Article  CAS  PubMed  Google Scholar 

Ferrari AC. Raman spectroscopy of graphene and graphite: disorder, electron–phonon coupling, doping and nonadiabatic effects. Solid State Commun. 2007;143(1):47–57.

Article  CAS  Google Scholar 

Nie Y, Wang P, Liang Z, Ma Q, Su X. Rational fabrication of a smart electrochemiluminescent sensor: synergistic effect of a self-luminous faraday cage and biomimetic magnetic vesicles. Anal Chem. 2021;93(20):7508–15.

Article  CAS  PubMed  Google Scholar 

Cai K, Pi W, Qin J, et al. Detection of CYFRA 21–1 in human serum by an electrochemical immunosensor based on UiO-66-NH2@CMWCNTs and CS@AuNPs. Colloids Surf B: Biointerfaces. 2023;230: 113517.

Article  CAS  PubMed  Google Scholar 

Hu K, Cheng J, Wang K, et al. Sensitive electrochemical immunosensor for CYFRA21-1 detection based on AuNPs@MoS2@Ti3C2Tx composites. Talanta. 2022;238: 122987.

Article  CAS  PubMed  Google Scholar 

Gu Y, Jiang Y, Gong G, et

Comments (0)

No login
gif